US5165073A - Facsimile apparatus for producing variable size and resolution images on a reproduction medium - Google Patents

Facsimile apparatus for producing variable size and resolution images on a reproduction medium Download PDF

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Publication number
US5165073A
US5165073A US07/519,051 US51905190A US5165073A US 5165073 A US5165073 A US 5165073A US 51905190 A US51905190 A US 51905190A US 5165073 A US5165073 A US 5165073A
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United States
Prior art keywords
exposure
pixel
image
data
pixels
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US07/519,051
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English (en)
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Kerry L. Shaklee
Alvin R. Rothe, Jr.
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MAC ACQUISITION I Inc (CO CORP)
METRUM Inc (CO CORP)
SIENNA IMAGING Inc (CO CORP)
Sienna Imaging Inc
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Honeywell Inc
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Assigned to HONEYWELL INC., A CORP. OF DE. reassignment HONEYWELL INC., A CORP. OF DE. ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: ROTHE, ALVIN R. JR., SHAKLEE, KERRY L.
Priority to CA002041402A priority patent/CA2041402A1/en
Priority to DE69117575T priority patent/DE69117575T2/de
Priority to EP91107141A priority patent/EP0455250B1/en
Priority to JP13031091A priority patent/JP3198442B2/ja
Assigned to ALLIANT TECHSYSTEMS INC. reassignment ALLIANT TECHSYSTEMS INC. ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: HONEYWELL INC. A CORP. OF DELAWARE
Publication of US5165073A publication Critical patent/US5165073A/en
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Assigned to SILICON VALLEY BANK reassignment SILICON VALLEY BANK SECURITY AGREEMENT Assignors: SIENNA IMAGING, INC.
Priority to HK98105708A priority patent/HK1006486A1/xx
Assigned to MADELEINE L.L.C. (NEW YORK LIMITED LIABILITY COMPANY) reassignment MADELEINE L.L.C. (NEW YORK LIMITED LIABILITY COMPANY) SECURITY AGREEMENT Assignors: SIENNA IMAGING, INC.
Assigned to CIT GROUP/BUSINESS CREDIT, INC. reassignment CIT GROUP/BUSINESS CREDIT, INC. SECURITY AGREEMENT Assignors: SIENNA IMAGING, INC.
Assigned to METRUM, INC. (CO CORP.) reassignment METRUM, INC. (CO CORP.) CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: MAC ACQUISITION I, INC. (CO CORP.)
Assigned to SIENNA IMAGING, INC. (CO CORP.) reassignment SIENNA IMAGING, INC. (CO CORP.) ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: METRU, INC. (CO. CORP.
Assigned to MAC ACQUISITION I, INC. (CO CORP.) reassignment MAC ACQUISITION I, INC. (CO CORP.) ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: ALLIANT TECHSYSTEMS, INC. (DE CORP.
Assigned to SIENNA IMAGING, INC. reassignment SIENNA IMAGING, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MADELEINE L.L.C., (NEW YORK LIMITED LIABILITY COMPANY)
Assigned to THE CHASE MANHATTAN BANK reassignment THE CHASE MANHATTAN BANK PATENT SECURITY AGREEMENT Assignors: ALLIANT TECHSYSTEMS INC.
Assigned to ALLIANT TECHSYSTEMS, INC. reassignment ALLIANT TECHSYSTEMS, INC. INTELLECTUAL PROPERTY PARTIAL Assignors: JPMORGAN CHASE BANK (FORMERLY KNOWN AS THE CHASE MANHATTAN BANK)
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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/0402Scanning different formats; Scanning with different densities of dots per unit length, e.g. different numbers of dots per inch (dpi); Conversion of scanning standards
    • H04N1/0405Different formats, e.g. A3 and A4
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/0402Scanning different formats; Scanning with different densities of dots per unit length, e.g. different numbers of dots per inch (dpi); Conversion of scanning standards
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/0402Scanning different formats; Scanning with different densities of dots per unit length, e.g. different numbers of dots per inch (dpi); Conversion of scanning standards
    • H04N1/0408Different densities of dots per unit length
    • H04N1/0411Different densities of dots per unit length in the main scanning direction
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/0402Scanning different formats; Scanning with different densities of dots per unit length, e.g. different numbers of dots per inch (dpi); Conversion of scanning standards
    • H04N1/0408Different densities of dots per unit length
    • H04N1/0414Different densities of dots per unit length in the sub scanning direction
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/0402Scanning different formats; Scanning with different densities of dots per unit length, e.g. different numbers of dots per inch (dpi); Conversion of scanning standards
    • H04N1/042Details of the method used
    • H04N1/0443Varying the scanning velocity or position
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/04Scanning arrangements, i.e. arrangements for the displacement of active reading or reproducing elements relative to the original or reproducing medium, or vice versa
    • H04N1/0402Scanning different formats; Scanning with different densities of dots per unit length, e.g. different numbers of dots per inch (dpi); Conversion of scanning standards
    • H04N1/042Details of the method used
    • H04N1/0446Varying the modulation time or intensity
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/387Composing, repositioning or otherwise geometrically modifying originals
    • H04N1/393Enlarging or reducing
    • H04N1/3935Enlarging or reducing with modification of image resolution, i.e. determining the values of picture elements at new relative positions
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N1/00Scanning, transmission or reproduction of documents or the like, e.g. facsimile transmission; Details thereof
    • H04N1/46Colour picture communication systems
    • H04N1/50Picture reproducers
    • H04N1/506Reproducing the colour component signals picture-sequentially, e.g. with reproducing heads spaced apart from one another in the subscanning direction

Definitions

  • This invention is directed toward the field of facsimile machines and more particularly is directed toward the field of facsimile machines which employ a cathode ray tube to record an image on a photo sensitive medium.
  • U.S. Pat. No. 4,309,720 shows such a system.
  • a full image is broken up into a plurality of lines, each line further being broken into separate color components.
  • the separate color components of a plurality of different lines are sequentially presented at a CRT.
  • the CRT has a red phosphor, a green phosphor, and a blue phosphor, which are capable of displaying only a portion of the larger video image.
  • the reproduction medium After one color component each of a plurality of lines has been sequentially displayed on the CRT face, the reproduction medium is moved so that a new plurality of color components of a plurality of lines can be presented to the CRT face and these new components will be exposed on an area of the reproduction medium not previously exposed to those components. Yet, it is desirable to have a system where the size and resolution of the recorded image are variable.
  • the present invention is a color facsimile machine which is capable of producing variable resolution and size images on a reproduction medium. This is accomplished by timing the release of image data from a memory means separately from the timing of a sweep of an electron beam produced by a display means. By varying the timing of the image data release, the sweep or both, resolution in a first direction is thereby affected. Resolution in a second direction can be altered by writing a line of image data on a variable number of adjacent lines on the reproduction medium.
  • the present invention includes a means which calculates the number of times a single line of image data must be repeated in order to produce an image on the reproduction medium having a preselected size and resolution.
  • FIG. 1 is a block diagram of the present system.
  • FIG. 2 is a front view of the display areas of the present CRT.
  • FIGS. 3a and b are timing diagrams of selected signals used in the present system.
  • FIG. 3b is a blow up of a portion of FIG. 3a.
  • FIGS. 4a, b, c and d represent sample images.
  • FIG. 4e is a sample reproduction medium.
  • FIG. 5a shows a reproduction medium which is about to pass by a CRT, to be exposed.
  • FIG. 5b shows a sample line pointer table which may be employed in implementing the present system.
  • FIG. 5c-g show movement of the reproduction medium past the face of the CRT and the effect of the movement on the line pointer table.
  • a pixel is the smallest informational element of an image.
  • An exemplary pixel is shown as 1A in FIG. 4a.
  • a line of image data includes 1 or more pixels such as pixels 1A-1J.
  • An image is a collection of lines of image data.
  • a track is the path traced by the electron beam along a phosphor or display area of a CRT.
  • Phosphor bands labeled R, G and B are shown in FIG. 2.
  • the reproduction medium 80 in FIG. 4e can be divided up into smaller pieces as well.
  • a vertical area 82 is adapted to receive a pixel such as 1A.
  • the size of a vertical area is dependent upon electron beam width, and the composition of the medium.
  • a line of the reproduction medium 84 is adapted to receive a line of image data such as 1A-1J. Finally, a section which have the same lines of image data recorded thereon.
  • FIG. 1 Shown in FIG. 1 are the necessary elements to comprise the inventive system.
  • An image source can be connected to the present system through an interface 8.
  • the interface 8 is then connected to a microprocessor 10 and direct memory access controller (DMAC) 20.
  • DMAC direct memory access controller
  • the microprocessor controls data flow, receives and executes instructions, and generally is responsible for operation of the complete system. In order to carry out its functions, the microprocessor 10 produces a number of signals which are used by other parts of the system. These signals will be described subsequently.
  • Microprocessor 10 also has a host port 15 which includes bus arbiter 17 and destination address generator 18.
  • the graphics microprocessor 10 is connected to DMAC 20 through bus arbiter 17 and destination address generator 18.
  • An example of a graphics microprocessor which fits the above description is the Texas Instruments 34010 graphics microprocessor.
  • graphics microprocessor will be used throughout the following description to describe a microprocessor which performs the above mentioned functions.
  • DMAC 20 acts as a traffic cop for image data flowing through the system.
  • the DMAC senses when data is available at the image source for processing by the graphics microprocessor 10. Once the DMAC has sensed that data is available, it sends a signal to the graphics microprocessor that data must be received and stored.
  • the bus arbiter then temporarily suspends other operations of the graphics microprocessor 10. Data is then passed through the graphics microprocessor onto a local bus 12 for storage in a random access memory (RAM) 22.
  • RAM random access memory
  • the destination address generator 18 determines where in the RAM 22 the image data is stored, and which of a plurality memory buffer therein is to receive the data.
  • RAM or memory means 22 can include a serial pixel path controller 25 and two memory buffers 30, 31. Periodically, some of the data stored in memory buffers 30, 31 are alternately unloaded by shift registers (not shown) built into the buffers, and the data contained therein is sent to an intensity look up table 40. Serial pixel path controller 25 controls which of the shift registers of the memory buffers 30, 31 is to be unloaded after being initialized by the graphics microprocessor.
  • Intensity look up table 40 modifies the color data, in a color system, contained in the signal sent from the memory buffer, and sends pixel information to display exposure means 49, which may include a CRT 50. Note that the present invention may be made using a monochrome CRT. Once a full line of pixel data has been sent to CRT 50, stepper motor 60 moves reproduction medium 80 slightly so that a new line of pixels may be exposed on the paper without adversely affecting the lines previously exposed.
  • CRT 50 has one or more, here three, exposure areas 51, 52 and 53.
  • DAC digital to analog converter
  • Beam intensity modulator 54 produces the signal which is sent to grid G for modulating the electron beam which strikes the phosphors. It is important to note that while the present embodiment is described as including three display areas, the present invention may be accomplished by using only one display area.
  • the wavelength of the light produced can be controlled by careful selection of a phosphorescent material which is deposited onto the display areas. Another term for the display areas is phosphors.
  • the present system may use other image exposure means such as a heat or pressure head which causes exposure of the reproduction medium by applying heat or pressure respectively.
  • the amount of heat or pressure would be modulated by the pixel data, while control of the resolution and size could be performed in the same manner as is herein described.
  • the movement of the electron beam can be controlled by yoke 55 which is also called the exposure position controller.
  • Yoke 55 receives signals which cause the electron beam to scan across display areas 51, 52 and 53 from, for example, A to B as shown in FIG. 2. This is called a horizontal deflection.
  • This horizontal deflection sweep rate maybe set with a frequency divider 76 which divides the master clock oscillator 72.
  • the image source Prior to the storage of any pixel information, the image source provides information to the graphics microprocessor on how many pixels are in each line of the image, how many lines there are in the image, and whether the image data will need to be reversed before printing.
  • the image data may be received as the mirror image of the desired image. In such cases the image data must be rearranged before exposure on the medium, or the CRT electron beam must be deflected in the opposite direction from its normal deflection.
  • the size and resolution information will be important in calculating the frequency of the signals leaving a first frequency divider 75 and determining how many times an individual line of pixels will be repeated on the reproduction medium to create an image with a selected aspect ratio.
  • image data can then be stored in memory buffers 30, 31.
  • DMAC 20 sends a signal to the bus arbiter 17.
  • Bus arbiter 17 then briefly suspends the graphics microprocessor from performing other functions.
  • Destination address generator 18 decides where in the memory buffer the pixel should be stored. The address at which a pixel will be stored will depend upon whether the image being received must be rearranged to correct for the aforementioned mirror image problem. If there is no rearrangement necessary, the destination address generator will start at an address, x for example, and continue to load pixels at addresses which increment by one for each pixel. If there are w pixels to be stored, the last address will be x+w.
  • the destination address generator will start at x+w address and decrement one address for each pixel.
  • the image source will provide a rearrange signal to the destination address generator if the image data must be rearranged.
  • the graphics microprocessor then causes the pixel to pass through the graphics microprocessor to the address in the memory buffer specified by the destination address generator.
  • image lines are broken into 256 pixel groups.
  • the graphics microprocessor loads one memory buffer with pixels until a complete group is stored.
  • the graphics microprocessor through the destination address generator causes the other memory buffer to store the next group of 256 pixels. This alternating process continues until the data for all of the pixels in a line are stores.
  • the DMAC 20 causes the graphics microprocessor to pause, which in turn causes the destination address generator to select a new address in memory means 22 to receive a next line of pixels. This process is also repeated until all of the lines of pixel data in an image are stored.
  • the present system allows the resolution and size of the printed image to be varied both in the horizontal and vertical directions.
  • variable resolution and size are achieved by varying the rate at which pixel data is released to the CRT or by varying the horizontal sweep rate or by varying both. This in turn varies the pixel "size" in the horizontal direction.
  • the only variable is the number of times a line of image data is exposed on the reproduction medium, and by varying the number of times a line of image data is exposed, vertical size and resolution are controlled.
  • FIGS. 4a, b, c and d thereshown are sample images wherein the numbers indicate the corresponding line from the image source, and the letters indicate pixels within a line. For ease of discussion, each box within the image represents a different addressable location on the reproduction medium.
  • the resolution in both the vertical and horizontal direction is 10 lines per inch. Note that no pixel is repeated throughout the image.
  • FIG. 4b thereshown is a second image having a resolution of 5 lines per inch.
  • lines of pixels are displayed twice on the CRT to produce the repeated pattern. Note that less image data is present in this image.
  • Four times as much information is used in printing image 1 as in image 2.
  • image 1 100 different pixels are used (ten image lines at ten pixels each).
  • image 2 only 25 pixels form the image (five lines of five pixels).
  • FIGS. 4a and 4d Both figures depict image 1, but FIG. 4d has a resolution of 5 lines per inch in both directions compared to the resolution in FIG. 4a of 10 lines per inch in both directions. Further, the images in both figures use pixels A-J of lines one through ten. However, in FIG. 4d, the smallest piece of image data (i.e., 1A) covers four times the area that the same piece of image data covers in FIG. 4a.
  • the horizontal resolution will be controlled by the rate at which pixel information is released from the shift registers to the CRT and the rate of the horizontal sweep of the electron beam. In a preferred embodiment, horizontal sweep time remains constant while the rate at which pixels are released from memory varies with horizontal size and resolution.
  • image 3 is shown having a horizontal resolution of 5 pixels per inch and a vertical resolution of 10 lines per inch. This is to show that horizontal and vertical resolution are independently controllable.
  • a line pointer table is set up before any image lines are projected onto the reproduction medium.
  • the line pointer table is set up in RAM by a sizing means 101 in the graphics microprocessor 10.
  • the sizing means 101 receives information on the number of vertical lines of the image, the desired resolution and the desired print size, then sets up a table based on an algorithm stored in ROM 90.
  • FIG. 5a a portion or sheet 500 of reproduction medium is shown ready to pass by CRT 50 to form an image thereon.
  • sheet 500 has 20 different vertical positions on which lines of an image may be recorded.
  • image 1 in FIG. 4d is being exposed to sheet 500.
  • Image 1 in FIG. 4d has a vertical dimension of 2" and a vertical resolution of five sections per inch.
  • the graphics microprocessor then calculates how many times a line of image data is to be repeated, by a simple division. Because there are ten lines to be displayed and 20 vertical areas to be recorded on the paper, each of the ten image data lines will need to be displayed twice onto adjacent vertical areas of sheet 500, as shown in FIG. 5a.
  • Arrow E is used to show the direction of paper movement past the CRT.
  • the line pointer table can be set up. This is done by the graphics microprocessor using instructions stored in ROM.
  • the line pointer table identifies to the graphics microprocessor which line of image data needs to be sent to the CRT given the current paper position, and the next track of the CRT display areas to be hit by the electron beam.
  • the line pointer table itself is stored in RAM.
  • This line pointer table 510 lists the order of display of image data lines on the reproduction medium and a corresponding RAM address for the image data lines.
  • sheet 500 is beginning to pass by CRT 50.
  • the CRT will alternate among tracks across the three phosphors, as to which tracks will be swept by the electron beam. Note that the tracks are identified by the letters R, G and B.
  • the CRT in the present embodiment, sweeps the red, then the green, then the blue track.
  • the graphics microprocessor determines the current position of the sheet. This may be done through using a counter 62 to count the number of paper movements. If for example, the green band was about to be swept, the graphics microprocessor would know that the leading edge of the sheet 500 had not yet advanced to band G, and thus no pixel data need be released from memory 22.
  • Line pointer table 510 has three pointers, one each for the R, G and B tracks. These pointers identify the line of the sheet which is adjacent to the R, G and B tracks. The pointers are used to determine which line of image data should be transferred out of memory to the CRT.
  • the first vertical area is the only one adjacent to the R track.
  • line pointer table 510 shows the R pointer being located adjacent to the memory address for the data for image line 1.
  • the sheet 500 has moved one vertical area from its position in FIG. 5c. Note that the R pointer has moved one position also.
  • the sheet 500 has advanced so that both the R and G tracks are now adjacent to a vertical area of the reproduction medium. Note that the R pointer has once again moved, and that the G pointer has now appeared, to show the proper line of pixels to be released during the sweep of the green phosphor.
  • the sheet has been advanced so that the R, G and B tracks now are adjacent to a portion of the sheet. Note that both the R and G pointers have moved due to the latest movement of the reproduction medium. Also, the B pointer has now appeared.
  • the R track will be swept by the electron beam which is modulated by the pixel data at address 0110
  • the G track will be swept by the electron beam which is modulated by the pixel information stored at address 0011
  • the B track will be swept by the electron beam which is being modulated by pixel information stored at address 0001.
  • the sheet 500 has been moved so that the two image data lines 1 have moved below the B track. Because line 1 will not be exposed again on the sheet, this image data is no longer needed. This in turn means that a new image data line of the image can be written over image data line 1 in memory 22 at address 0001.
  • the capacity of memory 22 is large enough to hold all of the image data lines of the image, but this is not always the case.
  • the inventive system has the capability of printing images with more image data than the memory 22 can handle at one time by overwriting no longer needed image data as was just suggested.
  • one of the serial pixel path controller's shift registers makes a copy of the image data stored at the desired location.
  • the shift registers take this image data in parallel, then serially shifts out the data upon command.
  • the serial pixel path controller 25 shifts the pixel data out serially in register with the signal received from frequency divider 75. Note that a single shift register may not have the capacity to hold pixel data for a complete image line.
  • pixel data for a complete image line may be stored such that for example, data for pixels 1-256 are stored at a first series of addresses in first memory buffer 30, data pixels 257-512 are stored at a first series of addresses in second memory buffer 31, data for pixels 513-768 are stored at a second series of addresses in first memory buffer 30, data for pixels 767 to 1024 are stored at a second series of addresses in second memory buffer 31 and so on until data for all of the pixels of a line have been stored.
  • the alternate loading of the memory buffers is controlled by destination address generator 18 and continues until all of the pixels of a line are stored. During loading, groups of data for 256 pixels can be unloaded as well. In unloading, one shift register is being parallel loaded with pixels while the other shift register is being serially unloaded.
  • intensity look up table 40 is a look up table which translates the pixel information into a signal for the CRT.
  • the graphics microprocessor tells the intensity look up table which color component of a line will be printed by using a counter which causes each of the three colors to be selected on every three counts. A two bit signal is assigned to each color. For example, here blue will be 00, green will be 01 and red will be 10.
  • Look up table 40 then will receive signal 00, then 01, then 10 as tracks R, G and B are about to be swept.
  • the intensity look up table then uses the color signal to modify the pixel data to account for being swept on a single color phosphor. Such intensity look up tables are well known in the art.
  • Beam intensity modulator 54 includes a digital to analog converter, and produces the signal which is sent to grid G for modulating the electron beam which strikes the phosphors.
  • a timing means 70 including oscillator 72, first and second frequency dividers 76, provides timing for the system.
  • Oscillator 72 provides the base timing signal for the entire machine.
  • Graphics microprocessor 10 and first and second frequency dividers 75, 80 all receive the constant frequency signal provided by oscillator 72.
  • FIG. 3b is a blow up of a portion of FIG. 3a taken along lines 3b-3b.
  • First frequency divider 70 produces a first frequency divided signal, (HCLK) as shown in FIGS. 3a and b, which causes serial pixel path controller to shift pixel signals out to the CRT.
  • the first frequency divider 75 receives as inputs the constant frequency signal and a first constant signal produced by the graphics microprocessor 10.
  • Second frequency divider 76 produces a second frequency divided signal, HCLK as shown in FIGS. 3a and b, which is then sent to the horizontal beam deflection control at yoke 55.
  • the second frequency divider 80 receives as inputs the constant frequency signal and a second constant signal.
  • the second frequency divided signal determines the length in time of each step of the horizontal sweep. This length can vary from image to image since n is recalculated for each new image being printed. Because the period length can be varied, the system is capable of producing a variable resolution image.
  • the algorithm for calculating m and n is stored in ROM 90 for retrieval and use by the graphics microprocessor.
  • the graphics microprocessor 10 produces a number of signals which may be used throughout the system. Four of these signals are vertical synchronization (VSYNC), Horizontal Synchronization (HSYNC), Blanking (BLANK) and STEP.
  • VSYNC vertical synchronization
  • HSELNC Horizontal Synchronization
  • BLANK Blanking
  • STEP STEP
  • the VSYNC signal in systems which have many lines per frame identifies the start of a new video frame.
  • the VSYNC signal is used to identify the occurrence of an event internal to the graphics microprocessor known as a display interrupt.
  • the display interrupt typically occurs in prior art systems when a horizontal retrace interval is about to begin.
  • the horizontal retrace interval generally occurs after the last pixel in a line has been displayed.
  • a display interrupt occurs.
  • DMAC 20 occasionally interferes with processing performed by graphics microprocessor 10.
  • the display interrupt also signals that a display area has been swept. It is desirable that the paper be moved at this point. Consequently, a STEP signal is provided to the stepper motor 60 during the display interrupt so that the paper may be moved in register with the image that is produced on the CRT screen.
  • the step signal may occur anytime between the end of one sweep and the beginning of the next sweep as is shown in FIG. 3a.
  • a buffer 65 is placed between the stepper motor and the graphics microprocessor. On occasion, the CRT will not have finished displaying pixels when the display interrupt occurs.
  • the buffer 65 receives the step signal and holds it until the HSYNC signal is received by the buffer. The buffer then sends the step signal on to the stepper motor.
  • the BLANK signal in prior art systems was used to blank the CRT beam during the horizontal retrace back to the beginning of the sweep.
  • the BLANK signal is used to control the logic which alternates the unloading of pixel data between banks of RAMS.
  • pixel data is loaded into memory buffers 30, 31 by alternating which buffer is to receive pixels. Unloading can occur concurrently with loading.
  • the graphics microprocessor initially selects a buffer to begin unloading pixel data.
  • the shift registers then copy the pixel data for the selected line.
  • Serial pixel path controller then starts shifting the pixel data out to intensity look up table 40, serially.
  • the BLANK signal switches so that the other shift register can send its pixels through to the intensity look up table. While the second shift register sends pixels 257 through 572 to intensity look up table 40, the first buffer is receiving pixels 513-768. This process also continues so that the shift registers continue to alternate shifting out pixels until all of the pixels of a line have been sent to intensity look up table.
  • the BLANK signal is programmable to any length shift register. Here it is set to 256 pixels.
  • a SCREEN REFRESH function has been used in the prior art to update the video shift registers during the horizontal retrace interval for the next horizontal line.
  • a SCREEN REFRESH function occurs after all of the pixels in a line have been sent to the CRT.
  • the SCREEN REFRESH function is programmed to occur after 256 pixels have been transferred to the intensity look up table.
  • an external counter 45 which produces a HBLANK signal is provided so that once a complete line of pixel data has been presented to CRT 50, the CRT will receive a horizontal blanking signal during its horizontal retrace period.
  • DCLK controls the timing of the release of pixels from serial pixel path controller 25.
  • the scale is too small to pick up the changes in state of DCLK.
  • the scale has been increased and only a portion of the time shown on FIG. 3a is being considered.
  • DCLK oscillates many times during each sweep. Each cycle of DCLK represents the release of a pixel signal to the beam intensity modulator 54 for CRT 50.
  • DCLK is calculated by dividing the constant frequency signal F, by constant M which results in ##EQU4##
  • HCLK is used to step the electron beam across the face of one of the display areas during a sweep by the electron beam. Each sweep has a preselected number of steps. Once again, the scale is too small to show the oscillations of HCLK in FIG. 3a. In FIG. 3b, the oscillations of HCLK are shown.
  • resolution and size are varied by changing the relationship between HCLK and DCLK. Note that in this example, three pixels are released for each horizontal step of the electron beam. This relationship must be maintained throughout the printing of one image to prevent distortion. However, the relationship may change if distortion is desirable, or the relationship may change from image to image depending upon the amount of image data in an image, the size of the desired image or the resolution which is selected.
  • HCLK is calculated by dividing constant frequency signal F 1 by constant n which results in ##EQU5##

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  • Engineering & Computer Science (AREA)
  • Multimedia (AREA)
  • Signal Processing (AREA)
  • Editing Of Facsimile Originals (AREA)
  • Controls And Circuits For Display Device (AREA)
  • Image Processing (AREA)
  • Facsimiles In General (AREA)
  • Record Information Processing For Printing (AREA)
US07/519,051 1990-05-04 1990-05-04 Facsimile apparatus for producing variable size and resolution images on a reproduction medium Expired - Fee Related US5165073A (en)

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US07/519,051 US5165073A (en) 1990-05-04 1990-05-04 Facsimile apparatus for producing variable size and resolution images on a reproduction medium
CA002041402A CA2041402A1 (en) 1990-05-04 1991-04-29 Facsimile apparatus for producing variable size and resolution images on a reproduction medium
DE69117575T DE69117575T2 (de) 1990-05-04 1991-05-02 Faksimilegerät und Methode für die Erzeugung von Bildern variabler Grösse und Auflösung auf einem Wiedergabemedium
EP91107141A EP0455250B1 (en) 1990-05-04 1991-05-02 Facsimile apparatus and method for producing variable size and resolution images on a reproduction medium
JP13031091A JP3198442B2 (ja) 1990-05-04 1991-05-07 再生媒体上に様々な大きさと解像度の画像を生成する装置及び方法
HK98105708A HK1006486A1 (en) 1990-05-04 1998-06-19 Facsimile apparatus and method for producing variable size and resolution images on a reproduction medium

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US5347634A (en) * 1990-03-15 1994-09-13 Hewlett-Packard Company System and method for directly executing user DMA instruction from user controlled process by employing processor privileged work buffer pointers
US5373347A (en) * 1994-02-14 1994-12-13 Metrum, Inc. Staggered multiple CRT's in a photographic process printer
US5453847A (en) * 1993-11-01 1995-09-26 Motorola, Inc. LCD facsimile transmission
US5615310A (en) * 1993-12-18 1997-03-25 Samsung Electronics Co., Ltd. Circuit for resolution matching
US5841952A (en) * 1996-04-29 1998-11-24 Sienna Imaging, Inc. Parallel segment printing in a photographic process printer
US6028333A (en) * 1991-02-16 2000-02-22 Semiconductor Energy Laboratory Co., Ltd. Electric device, matrix device, electro-optical display device, and semiconductor memory having thin-film transistors
US6326642B1 (en) 1992-05-29 2001-12-04 Semiconductor Energy Laboratory Co., Ltd. Electric device, matrix device, electro-optical display device, and semiconductor memory having thin-film transistors
US6441399B1 (en) 1994-04-22 2002-08-27 Semiconductor Energy Laboratory Co., Ltd. Semiconductor integrated system
US6747627B1 (en) 1994-04-22 2004-06-08 Semiconductor Energy Laboratory Co., Ltd. Redundancy shift register circuit for driver circuit in active matrix type liquid crystal display device
US20080219594A1 (en) * 2007-03-07 2008-09-11 Samsung Electro-Mechanics Co., Ltd. Image resolution converting method and display apparatus applied with the same

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JP3079076B2 (ja) * 1997-03-19 2000-08-21 富士通株式会社 画像形成装置
EP0871322A1 (en) * 1997-04-12 1998-10-14 Agfa-Gevaert AG Double resolution image recording system
JP2003211748A (ja) * 2001-11-09 2003-07-29 Canon Inc 画像形成装置、画像形成方法およびプログラム

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US5841952A (en) * 1996-04-29 1998-11-24 Sienna Imaging, Inc. Parallel segment printing in a photographic process printer
US20080219594A1 (en) * 2007-03-07 2008-09-11 Samsung Electro-Mechanics Co., Ltd. Image resolution converting method and display apparatus applied with the same

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HK1006486A1 (en) 1999-02-26
CA2041402A1 (en) 1991-11-05
JP3198442B2 (ja) 2001-08-13
DE69117575T2 (de) 1996-09-26
JPH0690348A (ja) 1994-03-29
DE69117575D1 (de) 1996-04-11
EP0455250A1 (en) 1991-11-06
EP0455250B1 (en) 1996-03-06

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